小型化
材料科学
热电效应
功率密度
能量收集
纳米技术
离子键合
光电子学
数码产品
热电发电机
可穿戴技术
电压
可穿戴计算机
工程物理
调制(音乐)
塞贝克系数
热的
电极
热电材料
储能
热传导
热能
热电冷却
功率(物理)
超级电容器
电气工程
发电
作者
Haofei Meng,Wenke Gao,Yongping Chen
标识
DOI:10.1038/s41467-026-71286-2
摘要
Harvesting low-grade heat is a sustainable way to power wearable electronics, and quasi-solid-state ionic thermoelectric cells offer a flexible, low-cost option. Their use, however, has been limited by a key trade-off: miniaturization reduces the internal thermal gradient and compromises performance. Here, we address this challenge with an ultrathin asymmetric architecture that separates thermal energy harvesting from the conventional reliance on a sustained through-plane temperature gradient. The design couples thermally driven ionic modulation at one interface with engineered pseudocapacitive charge storage at the other. Our 1-mm-thick device delivers an open-circuit voltage of 0.1 V, a power density of 1.6 W m-2, and an energy density of 1500 J m-2 using near-body heat. An array of 20 cells generates 1.9 V and a peak power of 23 W m-2, enabling continuous smartwatch operation. This strategy provides a practical route to ultrathin ionic thermoelectric cells for self-powered wearable systems.
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